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Published on: August 20, 2018
Anamorsin/Ndor1 Complex Reduces [2Fe-2S]-MitoNEET via a Transient Protein-Protein Interaction
Francesca Camponeschi1,2, Simone Ciofi-Baffoni1,2, Lucia Banci1,2
1Magnetic Resonance Center (CERM), University of Florence , Via Luigi Sacconi 6, 50019 Sesto Fiorentino, Florence, Italy.
Abstract:
Human mitoNEET is a homodimeric protein anchored to the outer mitochondrial membrane and has a C-terminal [2Fe-2S] binding domain located in the cytosol. Recently, human mitoNEET has been shown to be implicated in Fe/S cluster repair of cytosolic iron regulatory protein 1 (IRP1), a key regulator of cellular iron homeostasis in mammalian cells. The Fe/S cluster repair function of mitoNEET is based on an Fe/S redox switch mechanism: under normal cellular conditions, reduced [2Fe-2S]+-mitoNEET is present and is inactive as an Fe/S cluster transfer protein; under conditions of oxidative cellular stress, the clusters of mitoNEET become oxidized, and the formed [2Fe-2S]2+-mitoNEET species reacts promptly to initiate Fe/S cluster transfer to IRP1, recycling the cytosolic apo-IRP1 into holo-aconitase. Until now, no clear data have been available on which is the system that reduces the mitoNEET clusters back once oxidative stress is not present anymore. In the present work, we used UV-vis and NMR spectroscopies to investigate the electron transfer process between mitoNEET and the cytosolic electron-donor Ndor1/anamorsin complex, a component of the cytosolic iron-sulfur protein assembly (CIA) machinery. The [2Fe-2S] clusters of mitoNEET are reduced via the formation of a transient complex that brings the [2Fe-2S] clusters of mitoNEET close to the redox-active [2Fe-2S] cluster of anamorsin. Our data provide in vitro evidence of a possible direct link between the CIA machinery and the mitoNEET cluster transfer repair pathway. This link might contribute to recovery of CIA machinery efficiency to mature cytosolic and nuclear Fe/S proteins.
Insights
Human mitoNEET protein repairs iron-sulfur (Fe/S) clusters in cells. This study reveals that the cytosolic iron-sulfur protein assembly (CIA) machinery, specifically Ndor1/anamorsin, reduces mitoNEET clusters after oxidative stress, linking CIA to mitoNEET repair.
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Biology
Background:
- Human mitoNEET, located on the outer mitochondrial membrane, plays a role in repairing iron-sulfur (Fe/S) clusters.
- mitoNEET is involved in the Fe/S cluster repair of cytosolic iron regulatory protein 1 (IRP1), crucial for cellular iron homeostasis.
- The Fe/S cluster repair mechanism involves a redox switch in mitoNEET, transitioning between reduced inactive and oxidized active states.
Purpose of the Study:
- To identify the system responsible for reducing mitoNEET Fe/S clusters after oxidative stress.
- To investigate the electron transfer process between mitoNEET and the Ndor1/anamorsin complex.
Main Methods:
- UV-vis spectroscopy
- NMR spectroscopy
- In vitro biochemical assays
Main Results:
- The Ndor1/anamorsin complex directly interacts with mitoNEET to reduce its [2Fe-2S] clusters.
- A transient complex is formed, facilitating electron transfer from anamorsin's [2Fe-2S] cluster to mitoNEET.
- This provides in vitro evidence for a link between the cytosolic iron-sulfur protein assembly (CIA) machinery and mitoNEET repair.
Conclusions:
- The Ndor1/anamorsin complex is a key player in restoring mitoNEET function after oxidative stress.
- This interaction establishes a direct link between the CIA machinery and the mitoNEET Fe/S cluster repair pathway.
- This pathway may be essential for the efficient maturation of cytosolic and nuclear Fe/S proteins.
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